DK2314655T3 - Use of a 1,3,3,3-tetrafluoropropen (HFO-1234ze) containing the composition as a refrigerant in an air conditioning system for vehicles - Google Patents

Use of a 1,3,3,3-tetrafluoropropen (HFO-1234ze) containing the composition as a refrigerant in an air conditioning system for vehicles Download PDF

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DK2314655T3
DK2314655T3 DK10011471.9T DK10011471T DK2314655T3 DK 2314655 T3 DK2314655 T3 DK 2314655T3 DK 10011471 T DK10011471 T DK 10011471T DK 2314655 T3 DK2314655 T3 DK 2314655T3
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hfo
hfc
refrigerant
composition
compositions
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DK10011471.9T
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Danish (da)
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Hang T Pham
Rajiv R Singh
Ian Robert Shankland
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Honeywell Int Inc
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    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09KMATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
    • C09K5/00Heat-transfer, heat-exchange or heat-storage materials, e.g. refrigerants; Materials for the production of heat or cold by chemical reactions other than by combustion
    • C09K5/02Materials undergoing a change of physical state when used
    • C09K5/04Materials undergoing a change of physical state when used the change of state being from liquid to vapour or vice versa
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    • C09K5/00Heat-transfer, heat-exchange or heat-storage materials, e.g. refrigerants; Materials for the production of heat or cold by chemical reactions other than by combustion
    • C09K5/02Materials undergoing a change of physical state when used
    • C09K5/04Materials undergoing a change of physical state when used the change of state being from liquid to vapour or vice versa
    • C09K5/041Materials undergoing a change of physical state when used the change of state being from liquid to vapour or vice versa for compression-type refrigeration systems
    • C09K5/044Materials undergoing a change of physical state when used the change of state being from liquid to vapour or vice versa for compression-type refrigeration systems comprising halogenated compounds
    • C09K5/045Materials undergoing a change of physical state when used the change of state being from liquid to vapour or vice versa for compression-type refrigeration systems comprising halogenated compounds containing only fluorine as halogen
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01NPRESERVATION OF BODIES OF HUMANS OR ANIMALS OR PLANTS OR PARTS THEREOF; BIOCIDES, e.g. AS DISINFECTANTS, AS PESTICIDES OR AS HERBICIDES; PEST REPELLANTS OR ATTRACTANTS; PLANT GROWTH REGULATORS
    • A01N29/00Biocides, pest repellants or attractants, or plant growth regulators containing halogenated hydrocarbons
    • AHUMAN NECESSITIES
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    • A23L27/202Aliphatic compounds
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    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K47/00Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient
    • A61K47/06Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/0012Galenical forms characterised by the site of application
    • A61K9/007Pulmonary tract; Aromatherapy
    • A61K9/0073Sprays or powders for inhalation; Aerolised or nebulised preparations generated by other means than thermal energy
    • A61K9/008Sprays or powders for inhalation; Aerolised or nebulised preparations generated by other means than thermal energy comprising drug dissolved or suspended in liquid propellant for inhalation via a pressurized metered dose inhaler [MDI]
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61LMETHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
    • A61L2/00Methods or apparatus for disinfecting or sterilising materials or objects other than foodstuffs or contact lenses; Accessories therefor
    • A61L2/16Methods or apparatus for disinfecting or sterilising materials or objects other than foodstuffs or contact lenses; Accessories therefor using chemical substances
    • A61L2/18Liquid substances or solutions comprising solids or dissolved gases
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    • A62LIFE-SAVING; FIRE-FIGHTING
    • A62DCHEMICAL MEANS FOR EXTINGUISHING FIRES OR FOR COMBATING OR PROTECTING AGAINST HARMFUL CHEMICAL AGENTS; CHEMICAL MATERIALS FOR USE IN BREATHING APPARATUS
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    • A62D1/00Fire-extinguishing compositions; Use of chemical substances in extinguishing fires
    • A62D1/0028Liquid extinguishing substances
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    • A62LIFE-SAVING; FIRE-FIGHTING
    • A62DCHEMICAL MEANS FOR EXTINGUISHING FIRES OR FOR COMBATING OR PROTECTING AGAINST HARMFUL CHEMICAL AGENTS; CHEMICAL MATERIALS FOR USE IN BREATHING APPARATUS
    • A62D1/00Fire-extinguishing compositions; Use of chemical substances in extinguishing fires
    • A62D1/0028Liquid extinguishing substances
    • A62D1/0057Polyhaloalkanes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D11/00Solvent extraction
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D11/00Solvent extraction
    • B01D11/02Solvent extraction of solids
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    • BPERFORMING OPERATIONS; TRANSPORTING
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    • B01J31/00Catalysts comprising hydrides, coordination complexes or organic compounds
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    • B01J31/0231Halogen-containing compounds
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    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
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    • B01J37/00Processes, in general, for preparing catalysts; Processes, in general, for activation of catalysts
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Description

Description
FIELD OF THE INVENTION
This invention relates to compositions having utility in refrigeration systems, and to methods and systems utilizing such compositions. BACKGROUND OF THE INVENTION
Fluorocarbon based fluids have found widespread use in many commercial and industrial applications. For example, fluorocarbon based fluids are frequendy used as a working fluid in systems such as air conditioning, heat pump and refrigeration applications. The vapor compression cycle is one of the most commonly used type methods to accomplish cooling or heating in a refrigeration system. The vapor compression cycle usually involves the phase change of the refrigerant from the liquid to the vapor phase through heat absorption at a relatively low pressure and then from the vapor to the liquid phase through heat removal at a relatively low pressure and temperature, compressing the vapor to a relatively elevated pressure, condensing the vapor to the liquid phase through heat removal at this relatively elevated pressure and temperature, and then reducing the pressure to start the cycle over again.
While the primary purpose of refrigeration is to remove heat from an object or other fluid at a relatively low temperature, the primary purpose of a heat pump is to add heat at a higher temperature relative to the environment.
Certain fluorocarbons have been a preferred component in many heat exchange fluids, such as refrigerants, for many years in many applications. For, example, fluoroalkanes, such as chlorofluoromethane and chiorofluoroethane derivatives, have gained widespread use as refrigerants in applications including air conditioning and heat pump applications owing to their unique combination of chamical and physical properties. Many of the refrigerants commonly utilized in vapor compression systems are either single components fluids or azeotropic mixtures.
Concern has increased in recent years about potential damage to the earth's atmosphere and climate, and certain chlorine-based compounds have been identified as particularly problematic in this regard. The use of chlorine-containing compositions (such as chlorofluorocarbons (CFCs), hydrochlorofluorocarbons (HCPCs) and the like) as refigerants In air-conditioning and refrigeration systems has become disfavored because of the ozone-depleting properties associated with many of such compounds. There has thus been an increasing need for new fluorocarbon and hydrofluorocarbon compounds and compositions that offer alternatives for refrigeration and heat pump applications. For example, it has become desirable to retrofit chlorine-cantaining refrigeration systems by replacing chlorine-containing refrigerants with nonchlorine-containing refrigerant compounds that will not deplete the ozone layer, such as hydrofluorocarbons (HFCs).
It is generally considered important, however, that any potential substitute refrigerant must also possess those properties present in many of the most widely used fluids, such as excellent heat transfer proposes, chemical stability, low- or no- toxicity, non-flammability and lubricant compatibility, among others.
Applicants have come to appreciate that lubricant compatibility is of particular importance in many of applications. More particularly, it is highly desirably for refrigeration fluids to be compatible with the lubricant utilized in the compressor unit used in most refrigeration systems. Unfortunately, many non-ohlorine-containing refrigeration fluids, including HFCs, are relatively insoluble and/or immiscible in the types of lubricants used traditionally with CFCs and HFCs, including, for example, mineral oils, alkylbenzenes or poly(alpha-olefins). In order for a refrigeration fluid-lubricant combination to work at a desirable level of efficiently within a compression refrigeration, air-conditioning and/or heat pump system, the lubricant should be sufficiently soluble in the refrigeration liquid over a wide range of operating temperatures. Such solubility lowers the viscosity of the lubricant and allows it to flow more easily throughout the system. In the absence of such solubility, lubricants tend to become lodged in the coils of the evaporator of the refrigeration, air-conditioning or heat pump system, as well as other parts of the system, and thus reduce the system efficiency.
With regard to efficiency in use, it is important to note that a loss in refrigerant thermodynamic performance or energy efficiency may have secondary environmental impacts through increased fossil fuel usage arising from an increased demand for electrical energy.
Furthermore, it is generally considered desirable for CFC refrigerant substitutes to be effective without major engineering changes to conventional vapor compression technology currently used with CFC refrigerants.
Flammability is another important property for many applications. That is, it is considered either important or essential In many applications, including particularly in heat transfer applications, to use compositions, which are non-flammable. Thus, it is frequently beneficial to use in such compositions compounds, which are nonflammable. As used herein, the term "nonflammable" refers to compounds or compositions, which are determined to be nonflammable as determined in accordance with ASTM standard E-681, dated 2002, which is incorporated herein by reference. Unfortunately, many HFCs, which might otherwise be desirable for used in refrigerant compositions are not nonflammable. For example, the fluoroalkane difluoromethane (HFC-152a) and the fluoroalkene 1,1,1-trifluoropropene (HFO-12434zf) are each flammable and therefore not viable for use in many applications.
Higher fluoroalkenes, that is fluorine-substituted alkenes having at least five carbon atoms, have been suggested for use as refrigerants. U.S. Patent No. 4,788,352 - Smutny is directed to production of fluorinated C5 to C8 compounds having at least some degree of unsaturation. The Smutny patent identifies such higher olefins as being known to have utility as refrigerants, pesticides, dielectric fluids, heat transfer fluids, solvents, and intermediates in various chemical reactions. (See column 1, lines 11-22).
While the fluorinated olefins described in Smutny may have some level of effectiveness in heat transfer applications, it is believed that such compounds may also have certain disadvantages. For example, some of these compounds may tend to attack substrates, particularly general-purpose plastics such as acrylic resins and ABS resins. Furthermore, the higher olefinic compounds described in Smutny may also be undesirable in certain applications because of the potential level of toxicity of such compounds which may arise as a result of pesticide activity noted in Smutny. Also, such compounds may have a boiling point, which is too high to make them useful as a refrigerant in certain applications.
Bromofluoromethane and bromochlorofluoromethane derivatives, particularly bromotrifluoromethane (Halon 1301) and bromochiorodifluoromethane (Halon 1211) have gained widespread use as fire extinguishing agents in enclosed areas such as airplane cabins and computer rooms. However, the use of various halons is being phased out due to their high ozone depletion. Moreover, as halons are frequently used in areas where humans are present, suitable replacements must also be safe to humans at concentrations necessary to suppress or extinguish fire. JP 04 110 388 A describes heat transfer media for use in heat transfer purposes which are suitable for heat pumps and heat engines. The disclosed invention is a heat transfer medium comprising an organic compound which can be represented by the molecular formula C3HmFn, where m is from 1 to 5, n is from 1 to 5, and m + n = 6 and which has one double bond in the molecular structure. US 6,111,150 discloses a method for producing a fluorinated alkane, namely, 1,1,1,3,3-pentafluoropropane, which is said to be useful as a foaming agent, a refrigerant and the like. The method includes a step of adding hydrogen fluoride to 1,1,1,3,3-pentafluoropropene in a liquid phase in the presence of a hydrohalogenation catalyst. A method is also disclosed for forming 1,3,3,3-tetrafluoropropene, which is said to be useful as an intermediate of medicines, of agricultural chemicals, and as functional materials, and as a refrigerant and the like. "Current and Projected Use of Refrigerants in Europe", ASHRAE/NIST REFRIGERANTS CONFERENCE, October 1997, pages 38-34, describes the use of 1,2,2,2-tetrafluoroethane (R-134a) in car air-conditioning systems.
Applicants have thus come to appreciate a need for heat transfer compositions useful in vapor compression heating and cooling systems and methods, while avoiding one or more of the disadvantages noted above.
SUMMARY
The present invention provides the use, as a refrigerant, of a composition comprising at least 50% by weight of 1,3,3,3-tetrafluoropropene (HFO-1234ze) in an automotive air-conditioning system.
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS THE COMPOSITIONS
The term "HF01234" is used herein to refer to all tetrafluoropropenes. The term "HFO-1234ze" is used herein genetically to refer to 1,3,3,3-tetrafluoropropene, independent of whether it is the cis- or trans- form. The terms "cisHFO-1234ze" and "transHF0-1234ze" are used herein to describe the cis- and trans- forms of 1,3,3,3-tetrafluoropropene respectively. The term "HF0-1234ze" therefore includes within its scope cisHF0-1234ze, transHF0-1234ze, and all combinations and mixtures of these.
Although the properties of cisHF0-1234z and transHF0-1234ze differ in at least some respects, it is contemplated that each of these compounds is adaptable for use, either alone or together with other compounds including its stereoisomer, in the present invention. HFO-1234 compounds are known materials and are listed in Chemical Abstracts databases. The production of fluoropropenes such as CF3CH=CH2 by catalytic vapor phase fluorination of various saturated and unsaturated halogen-containing C3 compounds is described in U.S. Patent Nos. 2,889,379; 4,798,818 and 4,465,786, each of which is incorporated herein by reference. EP 974,571, also incorporated herein by reference, discloses the preparation of 1,1,1,3-tetrafluoropropene by contacting 1,1,1,3,3-pentafluoropropane (HFC-245fa) in the vapor phase with a chromium-based catalyst at elevated temperature, or in the liquid phase with an alcoholic solution of KOH, NaOH, Ca(OH)2 or Mg(OH)2, In addition, methods for producing compounds in accordance with the present invention are described generally in connection with pending United States Patent Application entitled "Process for Producing Fluoropropenes" bearing attorney docket number (H0003789 (26267)), which is also incorporated herein by reference.
The compositions for use in the present invention, comprising HFO-1234ze, are believed to possess properties that are advantageous for a number of important reasons. For example, applicants believe, based at least in part on mathematical modeling, that the fluoroolefins useful in the present invention will not have a substantial negative affect on atmospheric chemistry, being negligible contributors to ozone depletion in comparison to some other halogenated species. The preferred compositions of the present invention thus have the advantage of not contributing substantially to ozone depletion. The preferred compositions also do not contribute substantially to global warming compared to many of the hydrofluoroalkanes presently in use.
In certain preferred forms, compositions of the present invention have a Global Warming Potential (GWP) of not greater than about 1000, more preferably not greater than about 500, and even more preferably not greater than about 150. In certain embodiments, the GWP of the present compositions is not greater than about 100 and even more preferably not greater than about 75. As used herein, "GWP" is measured relative to that of carbon dioxide and over a 100-year time horizon, as defined in "The Scientific Assessment of Ozone Depletion, 2002, a report of the World Meteorological Association's Global Ozone Research and Monitoring Project," which is incorporated herein by reference.
In certain preferred forms, the present compositions also preferably have an Ozone Depletion Potential (ODP) of not greater than 0.05, more preferably not greater than 0.02 and even more preferably about zero. As used herein, "ODP" is as defined in "The Scientific Assessment of Ozone Depletion, 2002, A report of the World Meteorological Association's Global Ozone Research and Monitoring Project," which is incorporated herein by reference.
Many additional compounds may be included in the compositions for use in the present invention, and the presence of all such compounds is within the broad scope of the invention. In certain preferred embodiments, the present compositions include, in addition to HFO-1234ze, one or more of the following:
Difluoromethane (HFC-32)
Pentafluoroethane (HFC-125) 1,1,2,2-tetrafluoroethane (HFC-134) 1,1 ,1,2-Tetrafiuoroethane (HFC-134a)
Difluoroethane (HFC-152a) 1.1.1.2.3.3.3- Heptafluoropropane (HFC-227ea) 1.1.1.3.3.3- hexafiuoropropane (HFC-236fa) 1.1.1.3.3- pentafluoropropane (HFC-245fa) 1.1.1.3.3- pentafiuorobutane (HFC-365mfc) water C02
The relative amount of any of the above noted components, as well as any additional components which may be included in present compositions, can vary widely within the general broad scope of the present invention according to the particular application for the composition, and all such relative amounts are considered to be within the scope hereof.
The compositions for use in the present invention include HFO-1234ze in an amount that is at least 50% by weight, and even more preferably at least 70% by weight, of the composition. In many embodiments, it is preferred that the heat transfer compositions of the present invention comprise transHFO-1234ze. In certain preferred embodiments, the heat transfer compositions of the present invention comprise a combination of cisHFO-1234ze and transHFO-1234ze in a cis:trans weight ratio of from about 1:99 to about 10:99, more preferably from about 1:99 to about 5:95, and even more preferably from about 1:99 to about 3:97.
The compositions of the present invention may include other components for the purpose of enhancing or providing certain functionality to the composition, or in some cases to reduce the cost of the composition. For example, refrigerant compositions according to the present invention, especially those used in vapor compression systems, include a lubricant, generally in amounts of from about 30 to about 50 percent by weight of the composition. Furthermore, the present compositions may also include a compatibilizer, such as propane, for the purpose of aiding compatibility and/or solubility of the lubricant. Such compatibilizers, including propane, butanes and pentanes, are preferably present in amounts of from about 0.5 to about 5 percent by weight of the composition. Combinations of surfactants and solubilizing agents may also be added to the present compositions to aid oil solubility, as disclosed by U.S. Patent No. 6,516,837, the disclosure of which is incorporated by reference. Commonly used refrigeration lubricants such as Polyol Esters (POEs) and Poly Alkylene Glycols (PAGs), silicone oil, mineral oil, alkyl benzenes (ABs) and poly(alpha-olefin) (PAO) that are used in refrigeration machinery with hydrofluorocarbon (HFC) refrigerants may be used with the refrigerant compositions of the present invention.
Many existing refrigeration systems are currently adapted for use in connection with existing refrigerants, and the compositions of the present invention are believed to be adaptable for use in many of such systems, either with or without system modification. In many applications the compositions of the present invention may provide an advantage as a replacement in systems, which are currently based on refrigerants having a relatively high capacity. Furthermore, in embodiments where it is desired to use a lower capacity refrigerant composition of the present invention, for reasons of cost for example, to replace a refrigerant of higher capacity, such embodiments of the present compositions provide a potential advantage. Thus, it is preferred in certain embodiments to use compositions of the present invention, particularly compositions comprising a substantial proportion of, and in some embodiments consisting essentially of transHFO-1234ze, as a replacement for existing refrigerants, such as HFC-134a. In certain applications, the refrigerants of the present invention potentially permit the beneficial use of larger displacement compressors, thereby resulting in better energy efficiency than other refrigerants, such as HFC-134a. Therefore the refrigerant compositions of the present invention, particularly compositions comprising transHFP-1234ze, provide the possibility of achieving a competitive advantage on an energy basis for refrigerant replacement applications.
EXAMPLES
The following examples are provided for the purpose of illustrating the present invention but without limiting the scope thereof. EXAMPLE 1
The coefficient of performance (COP) is a universally accepted measure of refrigerant performance, especially useful in representing the relative thermodynamic efficiency of a refrigerant in a specific heating or cooling cycle involving evaporation or condensation of the refrigerant. In refrigeration engineering, this term expresses the ratio of useful refrigeration to the energy applied by the compressor in compressing the vapor. The capacity of a refrigerant represents the amount of cooling or heating it provides and provides some measure of the capability of a compressor to pump quantities of heat for a given volumetric flow rate of refrigerant. In other words, given a specific compressor, a refrigerant with a higher capacity will deliver more cooling or heating power. One means for estimating COP of a refrigerant at specific operating conditions is from the thermodynamic properties of the refrigerant using standard refrigeration cycle analysis techniques (see for example, R.C. Downing, FLUOROCARBON REFRIGERANTS HANDBOOK, Chapter 3, Prentice-Hall, 1988). A refrigeration/air conditioning cycle system is provided where the condenser temperature is about 150°F and the evaporator temperature is about -35°F under nominally isentropic compression with a compressor inlet temperature of about 50°F. COP is determined for several compositions of the present invention over a range of condenser and evaporator temperatures and reported in Table 1 below, based upon HFC-134a having a COP value of 1.00, a capacity value of 1.00 and a discharge temperature of 175°F. TABLE 1
: REFRIGERANT COMPOSITION j Relative COP I Relative CAPACITY j DISCHARGE TEMPERATURE (°F) I j * HFO 1225ye ^ 1.02 10.76 j 158 j iHFO trans- 1234ze ^ 1.04 [ 0.70 i 165 \ |HFOcis-1234ze 11.13 j0.36 I 155 \ j* HFO 1234yf j0.98 h.lO 1168 \ : * Not covered by the present invention :
This example shows that the compounds for use in the present invention each have a better energy efficiency than HFC-134a (1.04 and 1.13 compared to 1.00) and the compressor using the present refrigerant compositions will produce discharge temperatures (165 and 155 compared to 175), which is advantageous since such result will likely leading to reduced maintenance problems. EXAMPLE 2
The miscibility of HFO-1234ze with various refrigeration lubricants is tested. The lubricants tested are mineral oil (C3), alkyl benzene (Zerol 150), ester oil (Mobil EAL 22 cc and Solest 120), polyalkylene glycol (PAG) oil (Goodwrench Refrigeration Oil for 134a systems), and a poly(alphaolefin) oil (CP-6005-100). For each refrigerant/oil combination, three compositions are tested, namely 5, 20 and 50 weight percent of lubricant, with the balance of each being the compound of the present invention being tested
The lubricant compositions are placed in heavy-walled glass tubes. The tubes are evacuated, the refrigerant compound in accordance with the present invention is added, and the tubes are then sealed. The tubes are then put into an air bath environmental chamber, the temperature of which is varied from about -50°C to 70°C. At roughly 10°C intervals, visual observations of the tube contents are made for the existence of one or more liquid phases. In a case where more than one liquid phase is observed, the mixture is reported to be immiscible. In a case where there is only one liquid phase observed, the mixture is reported to be miscible. In those cases where two liquid phases were observed, but with one of the liquid phases occupying only a very small volume, the mixture is reported to be partially miscible.
The polyalkylene glycol and ester oil lubricants were judged to be miscible in all tested proportions over the entire temperature range. EXAMPLE 3
The compatibility of HFO-1234ze with PAG lubricating oils while in contact with metals used in refrigeration and air conditioning systems is tested at 350°C, representing conditions much more severe than are found in many refrigeration and air conditioning applications.
Aluminum, copper and steel coupons are added to heavy walled glass tubes. Two grams of oil are added to the tubes. The tubes are then evacuated and one gram of refrigerant is added. The tubes are put into an oven at 350°F for one week and visual observations are made. At the end of the exposure period, the tubes are removed.
This procedure was done for the following combinations of oil and the compound of the present invention: a) HFO-1234ze and GM Good wrench PAG oil b) HFO-1234ze and MOPAR-56 PAG oil
In each case, there is minimal change in the appearance of the contents of the tube. This indicates that the refrigerant compounds and compositions of the present invention are stable in contact with aluminum, steel and copper found in refrigeration and air conditioning systems, and the types of lubricating oils that are likely to be included in such compositions or used with such compositions in these types of systems.
COMPARATIVE EXAMPLE
Aluminum, copper and steel coupons are added to a heavy walled glass tube with mineral oil andCFC-12 and heated for one week at 350°C, as in Example 3. At the end of the exposure period, the tube is removed and visual observations are made. The liquid contents are observed to turn black, indicating there is severe decomposition of the contents of the tube. CFC-12 and mineral oil have heretofore been the combination of choice in many refrigerant systems and methods. Thus, the refrigerant compounds and compositions of the present invention possess significandy better stability with many commonly used lubricating oils than the widely used prior art refrigerant-lubricating oil combination.

Claims (13)

1. Anvendelse af en i det mindste 50 % efter vægt af 1,3,3,3-tetrafluoropropen (HFO-1234ze) indeholdende sammensætning som et kølemiddel i et airconditionanlæg til biler.Use of at least 50% by weight of 1,3,3,3-tetrafluoropropene (HFO-1234ze) containing composition as a refrigerant in an automobile air conditioner. 2. Anvendelse ifølge kravl, hvor HFO-1234ze omfatter trans HFO-1234ze.Use according to claim, wherein the HFO-1234ze comprises trans HFO-1234ze. 3. Anvendelse ifølge kravl, hvor det i det mindste ene HFO-1234ze omfatter cis HFO-1234ze.The use of claim 1, wherein the at least one HFO-1234ze comprises cis HFO-1234ze. 4. Fremgangsmåde ifølge krav 1, hvor HFO-1234ze omfatter trans HFO-1234ze og cisHFO-1234ze i et cis:trans vægtforhold på fra ca. 1:99 til ca. 10:99.The method of claim 1, wherein the HFO-1234ze comprises trans HFO-1234ze and cisHFO-1234ze in a cis: trans weight ratio of from about. 1:99 to approx. 10:99. 5. Anvendelse ifølge krav4, hvor HFO-1234ze omfatter trans HFO-1234ze og cisHFO-1234ze i et cis:trans vægtforhold på fra ca. 1:99 til ca. 5:95.The use of claim 4, wherein the HFO-1234ze comprises trans HFO-1234ze and cisHFO-1234ze in a cis: trans weight ratio of from ca. 1:99 to approx. 5:95. 6. Anvendelse ifølge hvilke som helst af de foregående krav, hvor HFO-1234ze omfatter i det mindste 70 % efter vægt af sammensætningen.Use according to any one of the preceding claims, wherein the HFO-1234ze comprises at least 70% by weight of the composition. 7. Anvendelse ifølge hvilke som helst af de foregående krav, hvor sammensætningen yderligere omfatter en eller flere forbindelser, der er udvalgt fra gruppen, som består af difluoromethan (HFC-32), pentafluoroethan (HFC-125), 1,1,2,2- tetrafluoroethan (HFC-134), 1,1,1,2-tetrafluoroethan (HFC- 134a), difluoroethan (HFC-152a), 1,1,1,2,3,3,3- heptafluoropropan (HFC-227ea), 1,1,1,3, 3, 3-hexafluoropropan (HFC-236fa), 1,1,1,3,3-pentafluoropropan (HFC-365mfc), vand, C02 og kombinationer af to eller flere af disse.Use according to any one of the preceding claims, wherein the composition further comprises one or more compounds selected from the group consisting of difluoromethane (HFC-32), pentafluoroethane (HFC-125), 1.1, 2-tetrafluoroethane (HFC-134), 1,1,1,2-tetrafluoroethane (HFC-134a), difluoroethane (HFC-152a), 1,1,1,2,3,3,3-heptafluoropropane (HFC-227ea) ), 1,1,1,3, 3,3-hexafluoropropane (HFC-236fa), 1,1,1,3,3-pentafluoropropane (HFC-365mfc), water, CO 2 and combinations of two or more of these. 8. Anvendelse ifølge hvilke som helst af de foregående krav, hvor sammensætningen yderligere omfatter et smøremiddel.Use according to any one of the preceding claims, wherein the composition further comprises a lubricant. 9. Anvendelse ifølge krav 8, hvor smøremidlet er udvalgt fra polyolester, polyalkylenglycol, siliconeolie, mineralolie, alkylbenzen og poly(alpha-olefin) smøremidler.Use according to claim 8, wherein the lubricant is selected from polyol ester, polyalkylene glycol, silicone oil, mineral oil, alkylbenzene and poly (alpha-olefin) lubricants. 10. Anvendelse ifølge hvilke som helst af de foregående krav, hvor sammensætningen har et Globalt Opvarmningspotentiale (GWP), der ikke er større end ca. 1000.Use according to any one of the preceding claims, wherein the composition has a Global Warming Potential (GWP) not greater than approx. 1000th 11. Anvendelse ifølge hvilke som helst af de foregående krav, hvor sammensætningen har et Globalt Opvarmningspotentiale (GWP), der ikke er større end ca. 500.Use according to any one of the preceding claims, wherein the composition has a Global Warming Potential (GWP) not greater than approx. 500th 12. Anvendelse ifølge hvilke som helst af de foregående krav, hvor sammensætningen har et Globalt Opvarmningspotentiale (GWP), der ikke er større end ca. 150.Use according to any one of the preceding claims, wherein the composition has a Global Warming Potential (GWP) not greater than approx. 150th 13. Anvendelse ifølge hvilke som helst af de foregående krav, hvor sammensætningen har et GWP, der ikke er større 100.Use according to any one of the preceding claims, wherein the composition has a GWP not greater than 100.
DK10011471.9T 2004-04-29 2005-04-29 Use of a 1,3,3,3-tetrafluoropropen (HFO-1234ze) containing the composition as a refrigerant in an air conditioning system for vehicles DK2314655T3 (en)

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